请定义一个队列并实现函数 max_value 得到队列里的最大值,要求函数max_value、push_back 和 pop_front 的均摊时间复杂度都是O(1)。
若队列为空,pop_front 和 max_value 需要返回 -1
示例 1:
输入:
["MaxQueue","push_back","push_back","max_value","pop_front","max_value"]
[[],[1],[2],[],[],[]]
输出:
[null,null,null,2,1,2]
示例 2:
输入:
["MaxQueue","pop_front","max_value"]
[[],[],[]]
输出:
[null,-1,-1]
限制:
1 <= push_back,pop_front,max_value的总操作数 <= 100001 <= value <= 10^5
思路
LeetCode题解
class MaxQueue {
Queue<Integer> queue = new LinkedList<Integer>();
ArrayDeque<Integer> dq = new ArrayDeque<Integer>();
public MaxQueue() { }
public int max_value() {
if( dq.size() == 0 )
return -1;
else
return dq.peekFirst();
}
public void push_back(int value) {
queue.add( value );
while( dq.size() > 0 && dq.peekLast() < value )
dq.pollLast();
dq.addLast( value );
}
public int pop_front() {
if( queue.size() == 0 )
return -1;
int res = queue.poll();
if( res == dq.peekFirst() )
dq.pollFirst();
return res;
}
}
/**
* Your MaxQueue object will be instantiated and called as such:
* MaxQueue obj = new MaxQueue();
* int param_1 = obj.max_value();
* obj.push_back(value);
* int param_3 = obj.pop_front();
*/
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